Experimental and Simulation Studies on Hematite Interaction with Na-Metasilicate Pentahydrate

Author:

Quezada Gonzalo R.1ORCID,Toro Norman2ORCID,Krishna R. S.3ORCID,Mishra Subhabrata45ORCID,Robles Pedro6ORCID,Salazar Ivan7,Mathe Enoque8,Jeldres Ricardo I.8ORCID

Affiliation:

1. Escuela de Ingeniería Química, Facultad de Ingeniería, Universidad del Bío-Bío, Concepción 4081112, Chile

2. Faculty of Engineering and Architecture, Universidad Arturo Prat, Iquique 1100000, Chile

3. Indian Institute of Technology Guwahati, Technology Innovation Hub, Guwahati 781039, India

4. CSIR—Institute of Minerals and Materials Technology, Bhubaneswar 750103, India

5. Academy of Scientific and Innovative Research, Ghaziabad 201002, India

6. Escuela de Ingeniería Química, Pontificia Universidad Católica de Valparaíso, Valparaíso 2340000, Chile

7. Department of Civil Engineering, Universidad Católica del Norte, Antofagasta 1270709, Chile

8. Departamento de Ingeniería Química y Procesos de Minerales, Facultad de Ingeniería, Universidad de Antofagasta, Antofagasta 1240000, Chile

Abstract

Iron ore is a fundamental pillar in construction globally, however, its process is highly polluting and deposits are becoming less concentrated, making reusing or reprocessing its sources a sustainable solution to the current industry. A rheological analysis was performed to understand the effect of sodium metasilicate on the flow curves of concentrated pulps. The study was carried out in an Anton Paar MCR 102 rheometer, showing that, in a wide range of dosages, the reagent can reduce the yield stress of the slurries, which would result in lower energy costs for transporting the pulps by pumping. To understand the behavior observed experimentally, computational simulation has been used by means of quantum calculations to represent the metasilicate molecule and the molecular dynamics to study the adsorption of metasilicate on the hematite surface. It has been possible to obtain that the adsorption is stable on the surface of hematite, where increasing the concentration of metasilicate increases its adsorption on the surface. The adsorption could be modeled by the Slips model where there is a delay in adsorption at low concentrations and then a saturated value is reached. It was found that metasilicate requires the presence of sodium ions to be adsorbed on the surface by means of a cation bridge-type interaction. It is also possible to identify that it is absorbed by means of hydrogen bridges, but to a lesser extent than the cation bridge. Finally, it is observed that the presence of metasilicate adsorbed on the surface modifies the net surface charge, increasing it and, thus, generating the effect of dispersion of hematite particles which experimentally is observed as a decrease in rheology.

Funder

ANID/Fondecyt

Centro CRHIAM Project ANID/Fondap

Publisher

MDPI AG

Subject

Chemistry (miscellaneous),Analytical Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Molecular Medicine,Drug Discovery,Pharmaceutical Science

Reference44 articles.

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2. Study on kinetics of thermal decomposition of low LOI goethetic hematite iron ore;Beuria;Int. J. Min. Sci. Technol.,2017

3. Mineralogical Study of Low and Lean Grade Iron Ore Fines during Slow and Rapid Reduction Roasting;Mahanta;J. Geol. Soc. India,2022

4. Batch scale study on magnetizing roasting of low-grade iron ore tailings using fluidized bed roaster;Mishra;Mater. Today Proc.,2022

5. Jena, M.K., Mahanta, J., Mahapatra, M.M., Baliarsingh, M., and Mishra, S. (2022). Recent Advances in Mechanical Engineering: Select Proceedings of ICRAMERD 2021, Springer Nature. Lecture Notes in Mechanical Engineering.

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